4.8 Article

Three-Dimensional Reticulated, Spongelike, Resilient Aerogels Assembled by SiC/Si3N4 Nanowires

期刊

NANO LETTERS
卷 21, 期 10, 页码 4167-4175

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.0c04917

关键词

Ceramic nanofibrous aerogels; hierarchical pores; compressive resilience; thermal insulation

资金

  1. National key RD projects [2019YFC1907101, 2019YFC1907103, 2017YFB0702304]
  2. Key R&D project in Ningxia Hui Autonomous Region [2020BCE01001]
  3. National Natural Science Foundation of China [51672024, 51908551]
  4. Natural Science Foundation of Beijing Municipality [2214073]
  5. State Key Laboratory of New Ceramic and Fine Processing Tsinghua University [KFZD202004]
  6. Fundamental Research Funds for the Central Universities [06500141, FRF-GF-19-032B]
  7. State Key Laboratory for Advanced Metals and Materials [2019Z-05]
  8. Integration of Green Key Process Systems MIIT

向作者/读者索取更多资源

This study proposed a novel method to fabricate porous aerogels with a highly porous structure, excellent mechanical stability, thermal insulation, and absorption capacity by utilizing polymer sponge as a template attached with reactive particles and carbothermal reduction process to realize nanowire growth.
For nanofibrous aerogels, a three-dimensional porous structure with interwoven nanofibers as a pore wall has become an urgent demand, and it remains to be a challenge to ensure the mechanical stability and thermal insulation. Other than the reported nanofiber as raw materials to generate three-dimensional cellular nanofibrous aerogels, an alternative low-cost and facile procedure has been proposed here via tactfully utilizing polymer sponge as a template attached with reactive particles, followed by a carbothermal reduction process to realize nanowire growth and their replacement of the original framework. The resulting spongy aerogels with numerous interlaced SiC/Si3N4 nanowires as a skeleton exhibit an ultrahigh porosity of 99.79%. Meanwhile, compressive elasticity after a compression at strain of 35% for 400 cycles, a low thermal conductivity of 23.19 mW/(m K), an excellent absorption capacity of 33.9-95.3 times for varied organic solvents removal, along with flexibility in shape design favored by the initial organic sponge make this nanofibrous aerogel an ideal material for heat shielding, absorption, or catalyst support.

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